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2-Thiopheneformamidinium-Based 2D Ruddlesden– Popper Perovskite Solar Cells with Efficiency of 16.72% and Negligible Hysteresis

机译:基于噻吩甲脒的2D Ruddlesden- popperskite太阳能电池,效率为16.72%,滞后可忽略不计

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Abstract Formamidinium (FA)‐based 3D perovskite solar cells (PSCs) have been widely studied and they show reduced bandgap, enhanced stability, and improved efficiency compared to MAPbI3‐based devices. Nevertheless, the FA‐based spacers have rarely been studied for 2D Ruddlesden–Popper (RP) perovskites, which have drawn wide attention due to their enormous potential for fabricating efficient and stable photovoltaic devices. Here, for the first time, FA‐based derivative, 2‐thiopheneformamidinium (ThFA), is successfully synthesized and employed as an organic spacer for 2D RP PSCs. A precursor organic salts‐assisted crystal growth technique is further developed to prepare high quality 2D (ThFA)2(MA)n−1PbnI3n+1 (nominal n = 3) perovskite films, which shows preferential vertical growth orientations, high charge carrier mobilities, and reduced trap density. As a result, the 2D RP PSCs with an inverted planar p‐i‐n structure exhibit a dramatically improved power conversion efficiency (PCE) from 7.23% to 16.72% with negligible hysteresis, which is among the highest PCE in 2D RP PSCs with low nominal n‐value of 3. Importantly, the optimized 2D PSCs exhibit a dramatically improved stability with less than 1% degradation after storage in N2 for 3000 h without encapsulation. These findings provide an effective strategy for developing FA‐based organic spacers toward highly efficient and stable 2D PSCs.
机译:除了基于MAPBI3的器件相比,摘要甲脒(FA)3D PEROVSKITE太阳能电池(PSCS)已被广泛研究,并显示出降低的带隙,增强稳定性和提高效率。尽管如此,基于FA的垫片很少已经研究了2D Ruddlesden-Popper(RP)Perovskites,这引起了由于其制造高效稳定的光伏器件的巨大电位而引起了广泛的关注。这里,首次,成功地合成了基于FA的衍生物,2-噻吩甲脒吲哚(THFA),并用作2D RP PSC的有机间隔物。进一步开发了前体有机盐辅助晶体生长技术以制备高质量的2D(THFA)2(MA)N-1PBNI3N + 1(标称n = 3)钙钛矿膜,其显示优先的垂直生长取向,高电荷载体迁移率,并降低陷阱密度。结果,具有倒置平面P-I-N结构的2D RP PSC具有显着提高的功率转换效率(PCE),从7.23%到16.72%,滞后是可忽略的滞后,这是2D RP PSC中的最高PCCS中的最高PSC标称n值为3.重要的是,优化的2D PSCs在N 2储存后,在没有封装的情况下在N 2储存后,优化的2D PSC表现出显着提高的稳定性,在N 2中储存3000小时。这些发现提供了对高效稳定的2D PSC开发基于FA的有机垫片的有效策略。

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